paper

Nodeless superconductivity in the noncentrosymmetric ThIrSi compound

arXiv:2302.08075 · doi:10.1103/PhysRevB.107.064507

Abstract

The ThIrSi superconductor, with K, is expected to show unusual features in view of its noncentrosymmetric structure and the presence of heavy elements featuring a sizable spin-orbit coupling. Here, we report a comprehensive study of its electronic properties by means of local-probe techniques: muon-spin rotation and relaxation ({\textmu}SR) and nuclear magnetic resonance (NMR). Both the superfluid density (determined via transverse-field {\textmu}SR) and the spin-lattice relaxation rate (determined via NMR) suggest a nodeless superconductivity. Furthermore, the absence of spontaneous magnetic fields below , as evinced from zero-field {\textmu}SR measurements, indicates a preserved time-reversal symmetry in the superconducting state of ThIrSi. Temperature-dependent upper critical fields as well as field-dependent superconducting muon-spin relaxations suggest the presence of multiple superconducting gaps in ThIrSi.

8 pages, 8 figures